DocumentCode
62264
Title
Local Shape Similarity and Mean-Shift Curvature for Deformable Surface Mapping of Anatomical Structures
Author
Cerveri, Pietro ; Manzotti, Alfonso ; Vanzulli, Angelo ; Baroni, Guido
Author_Institution
Dept. Electron., Politec. di Milano Univ., Milan, Italy
Volume
61
Issue
1
fYear
2014
fDate
Jan. 2014
Firstpage
16
Lastpage
24
Abstract
This paper reports a novel method for deformable registration of digital anatomical surfaces. The method capitalizes upon the iterative local affine iterative closest point (ICP) approach that applies an affine transformation per surface vertex along with a regularization constraint to force neighboring surface vertices to undergo similar transformations. More robust vertex correspondence with respect to simple closest point was obtained by exploiting local shape similarity metrics, which includes vertex distance, surface normal, and local curvature. The local curvature was mean shifted at run-time, during the iterative optimization, to make the point correspondence process less dependent upon the surface noise and resolution. The experimental validation was performed on three surface datasets (femur, hemi-pelvic bone, and liver). The registration results showed that the proposed method outperforms, across all the three surface datasets (rmse: 0.19 mm, 0.30 mm, 0.61 mm), global affine ICP (rmse: 2.89 mm, 3.95 mm, and 8.30 mm), local affine ICP (rmse: 0.31 mm, 1.61 mm, and 1.63 mm) and coherent point drift (rmse: 1.99 mm, 2.39 mm, and 4.78 mm) methods. As a whole, the mean-shifted curvature increased the registration accuracy by about 20%.
Keywords
affine transforms; bone; image registration; iterative methods; liver; medical image processing; affine transformation; anatomical structures; deformable registration; deformable surface mapping; digital anatomical surfaces; femur; hemi-pelvic bone; iterative local affine iterative closest point approach; iterative optimization; liver; local curvature; local shape similarity; mean-shift curvature; surface normal; vertex distance; Bones; Iterative closest point algorithm; Liver; Materials; Shape; Surface reconstruction; Transforms; Biomedical surface mapping; deformable registration; mean-shift curvature; point correspondence;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2013.2274672
Filename
6571238
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